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A Variational Approach to Recovering a Manifold from Sample Points

机译:从采样点恢复歧管的变分方法

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We present a novel algorithm for recovering a smooth manifold of unknown dimension and topology from a set of points known to belong to it. Numerous applications in computer vision can be naturally interpreted as instanciations of this fundamental problem. Recently, a non-iterative discrete approach, tensor voting, has been introduced to solve this problem and has been applied successfully to various applications. As an alternative, we propose a variational formulation of this problem in the continuous setting and derive an iterative algorithm which approximates its solutions. This method and tensor voting are some-what the differential and integral form of one another. Although iterative methods are slower in general, the strength of the suggested method is that it can easily be applied when the ambient space is not Euclidean, which is important in many applications. The algorithm consists in solving a partial differential equation that performs a special anisotropic diffusion on an implicit representation of the known set of points. This results in connecting isolated neighbouring points. This approach is very simple, mathematically sound, robust and powerful since it handles in a homogeneous way manifolds of aribtrary dimension and topology, embedded in Euclidean or non-Euclidean spaces, with or without border. We shall present this different contexts: (i) data visual analysis, (ii) skin detection in color images.
机译:我们提出了一种新颖的算法,用于从已知属于它的一组分数恢复未知维度和拓扑的平滑歧管。计算机愿景中的许多应用程序可以自然地解释为这一基本问题的机构。最近,已经引入了一种非迭代离散的方法,张表投票,以解决这个问题,并已成功应用于各种应用程序。作为替代方案,我们提出了在连续设置中对该问题的变化制定,并得出了近似其解决方案的迭代算法。这种方法和张量投票是一些 - 彼此的差异和整数形式。虽然迭代方法一般较慢,但建议的方法的强度是,当环境空间不是欧几里德时,它可以很容易地应用,这在许多应用中都很重要。该算法包括求解在已知一组点的隐式表示上执行特殊各向异性扩散的局部微分方程。这导致连接隔离的相邻点。这种方法非常简单,数学上,稳健和强大,因为它以各种各样的方向尺寸和拓扑的歧管处理,嵌入在欧几里德或非欧几里德空间中,有或没有边界。我们将出示这种不同的背景:(i)数据视觉分析,(ii)彩色图像中的皮肤检测。

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